IP Library › Granted Patent US 11,246,506
Granted Patent B2
US 11,246,506 · App. 15/751,306 · Granted Feb 15, 2022

Automatic sampling accessory system and method of detection

Inventors: Paul Bruce Gunneson (Cheshire, CT); John Russell Delfavero (East Hampton, CT)
Assignee: Koninklijke Philips N.V.
A61B5/097A61B5/0836A61B5/087A61M2230/432G01N33/497
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Quick Facts
Patent No.
US 11,246,506
App. No.
15/751,306
Filed
Feb 8, 2018
Granted
Feb 15, 2022
Kind
B2
Examiner
AGAHI, PUYA
Art Unit
3791
USPC
600/532
Abstract

A respiratory gas analyzer device ( 10 ), such as a capnograph device, is disclosed. A gas measurement component ( 28 ), such as a carbon dioxide measurement component in the case of a capnograph, is configured to measure at least one respired gas component (e.g. carbon dioxide). A pump ( 20 ) is connected to draw respired gas through the gas measurement component. A pressure gauge ( 30 ) is connected to measure pressure in an airflow pathway including the gas measurement component and the pump. An electronic pump controller ( 40 ) is programmed to start the pump in response to pressure measured by the pressure gauge satisfying a pump turn on criterion.

Claims (20)

1. A respiratory gas analyzer device for use with a patient who is being mechanically ventilated or breathing without assistance from a mechanical ventilator, comprising:

a housing of the respiratory gas analyzer device, the housing comprising an inlet configured to fluidly couple the respiratory gas analyzer device to a patient accessory, wherein the patient accessory delivers gas to the patient independent of the respiratory gas analyzer device;

a gas measurement component, the gas measurement component being fluidly coupled to the inlet and configured to measure at least one respired gas component;

a pump, the pump being configured to draw respired gas from the patient accessory and through the inlet to the gas measurement component;

a pressure gauge connected to measure pressure in an airflow pathway including the gas measurement component and the pump; and

an electronic pump controller programmed to:

start the pump in response to pressure measured by the pressure gauge satisfying a pump turn on criterion;

thereafter determine that validation for the start of the pump failed based on (i) a pressure criterion which is a function of pressure measured by the pressure gauge, indicating an open airflow circuit and (ii) a respired gas component criterion which is a function of measured respired gas component output by the gas measurement component; and

turn off the pump after validation fails.

2. The respiratory gas analyzer device of claim 1 wherein the electronic pump controller is programmed to start the pump in response to a change in pressure measured by the pressure gauge of magnitude greater than a pump turn on threshold.

3. The respiratory gas analyzer device of claim 2 wherein the change in pressure is measured over a pre-selected time interval of 2 seconds or less.

4. The respiratory gas analyzer device of claim 1 wherein the pump turn on criterion is |ΔP(t)|>T, where P(t) is the pressure as a function of time measured by the pressure gauge, |ΔP(t)| is a pressure change magnitude over a pre-selected time interval, and T is a pump turn on threshold.

5. The respiratory gas analyzer device of claim 2 wherein the pump turn on threshold is a configurable parameter of the respiratory gas analyzer device whose value is configured based on one or more of patient type and patient accessory type.

6. The respiratory gas analyzer device of claim 1 wherein the pump turn on criterion is an observable feature of the pressure measured by the pressure gauge that is characteristic of operative connection of the respiratory gas analyzer device to a patient who is being mechanically ventilated or breathing without assistance from a mechanical ventilator.

7. The respiratory gas analyzer device of claim 1 wherein the validation is further based on a pressure criterion that includes one or more of (i) a pressure decrease after pump startup and (ii) cycling of pressure after pump startup.

8. The respiratory gas analyzer device of claim 1 wherein:

the gas measurement component includes a carbon dioxide measurement component and the measured respired gas component includes a carbon dioxide measurement; and

the respired gas component criterion includes the measured end-tidal carbon dioxide (etCO 2 ) measured by the carbon dioxide measurement component exceeding a threshold (T etCO2 ).

9. The respiratory gas analyzer device of claim 1 wherein the respiratory gas analyzer device comprises a capnograph device in which the gas measurement component comprises a carbon dioxide (CO 2 ) measurement component.

10. The respiratory gas analyzer device of claim 1 , wherein the pump is configured to discharge the respired gas to atmosphere or into a scavenging system.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 8, 2018
From: GUNNESON, PAUL BRUCE; DELFAVERO, JOHN RUSSELL
To: KONINKLIJKE PHILIPS N.V.
Reel/Frame 044870/0011 →
Continuity (2)
Provisional Application 62203413 · Aug 11, 2015
Related Publication 20180235512A1 · Aug 23, 2018
Cited By (4)
US 12,364,411 US 12,569,229 US 12,575,811 US 12,672,795